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1// SPDX-License-Identifier: GPL-2.0
2/*
3 * Virtual cpu timer based timer functions.
4 *
5 * Copyright IBM Corp. 2004, 2012
6 * Author(s): Jan Glauber <jan.glauber@de.ibm.com>
7 */
8
9#include <linux/kernel_stat.h>
10#include <linux/sched/cputime.h>
11#include <linux/export.h>
12#include <linux/kernel.h>
13#include <linux/timex.h>
14#include <linux/types.h>
15#include <linux/time.h>
16
17#include <asm/vtimer.h>
18#include <asm/vtime.h>
19#include <asm/cpu_mf.h>
20#include <asm/smp.h>
21
22#include "entry.h"
23
24static void virt_timer_expire(void);
25
26static LIST_HEAD(virt_timer_list);
27static DEFINE_SPINLOCK(virt_timer_lock);
28static atomic64_t virt_timer_current;
29static atomic64_t virt_timer_elapsed;
30
31DEFINE_PER_CPU(u64, mt_cycles[8]);
32static DEFINE_PER_CPU(u64, mt_scaling_mult) = { 1 };
33static DEFINE_PER_CPU(u64, mt_scaling_div) = { 1 };
34static DEFINE_PER_CPU(u64, mt_scaling_jiffies);
35
36static inline u64 get_vtimer(void)
37{
38 u64 timer;
39
40 asm volatile("stpt %0" : "=Q" (timer));
41 return timer;
42}
43
44static inline void set_vtimer(u64 expires)
45{
46 u64 timer;
47
48 asm volatile(
49 " stpt %0\n" /* Store current cpu timer value */
50 " spt %1" /* Set new value imm. afterwards */
51 : "=Q" (timer) : "Q" (expires));
52 S390_lowcore.system_timer += S390_lowcore.last_update_timer - timer;
53 S390_lowcore.last_update_timer = expires;
54}
55
56static inline int virt_timer_forward(u64 elapsed)
57{
58 BUG_ON(!irqs_disabled());
59
60 if (list_empty(&virt_timer_list))
61 return 0;
62 elapsed = atomic64_add_return(elapsed, &virt_timer_elapsed);
63 return elapsed >= atomic64_read(&virt_timer_current);
64}
65
66static void update_mt_scaling(void)
67{
68 u64 cycles_new[8], *cycles_old;
69 u64 delta, fac, mult, div;
70 int i;
71
72 stcctm(MT_DIAG, smp_cpu_mtid + 1, cycles_new);
73 cycles_old = this_cpu_ptr(mt_cycles);
74 fac = 1;
75 mult = div = 0;
76 for (i = 0; i <= smp_cpu_mtid; i++) {
77 delta = cycles_new[i] - cycles_old[i];
78 div += delta;
79 mult *= i + 1;
80 mult += delta * fac;
81 fac *= i + 1;
82 }
83 div *= fac;
84 if (div > 0) {
85 /* Update scaling factor */
86 __this_cpu_write(mt_scaling_mult, mult);
87 __this_cpu_write(mt_scaling_div, div);
88 memcpy(cycles_old, cycles_new,
89 sizeof(u64) * (smp_cpu_mtid + 1));
90 }
91 __this_cpu_write(mt_scaling_jiffies, jiffies_64);
92}
93
94static inline u64 update_tsk_timer(unsigned long *tsk_vtime, u64 new)
95{
96 u64 delta;
97
98 delta = new - *tsk_vtime;
99 *tsk_vtime = new;
100 return delta;
101}
102
103
104static inline u64 scale_vtime(u64 vtime)
105{
106 u64 mult = __this_cpu_read(mt_scaling_mult);
107 u64 div = __this_cpu_read(mt_scaling_div);
108
109 if (smp_cpu_mtid)
110 return vtime * mult / div;
111 return vtime;
112}
113
114static void account_system_index_scaled(struct task_struct *p, u64 cputime,
115 enum cpu_usage_stat index)
116{
117 p->stimescaled += cputime_to_nsecs(scale_vtime(cputime));
118 account_system_index_time(p, cputime_to_nsecs(cputime), index);
119}
120
121/*
122 * Update process times based on virtual cpu times stored by entry.S
123 * to the lowcore fields user_timer, system_timer & steal_clock.
124 */
125static int do_account_vtime(struct task_struct *tsk)
126{
127 u64 timer, clock, user, guest, system, hardirq, softirq;
128
129 timer = S390_lowcore.last_update_timer;
130 clock = S390_lowcore.last_update_clock;
131 asm volatile(
132 " stpt %0\n" /* Store current cpu timer value */
133#ifdef CONFIG_HAVE_MARCH_Z9_109_FEATURES
134 " stckf %1" /* Store current tod clock value */
135#else
136 " stck %1" /* Store current tod clock value */
137#endif
138 : "=Q" (S390_lowcore.last_update_timer),
139 "=Q" (S390_lowcore.last_update_clock));
140 clock = S390_lowcore.last_update_clock - clock;
141 timer -= S390_lowcore.last_update_timer;
142
143 if (hardirq_count())
144 S390_lowcore.hardirq_timer += timer;
145 else
146 S390_lowcore.system_timer += timer;
147
148 /* Update MT utilization calculation */
149 if (smp_cpu_mtid &&
150 time_after64(jiffies_64, this_cpu_read(mt_scaling_jiffies)))
151 update_mt_scaling();
152
153 /* Calculate cputime delta */
154 user = update_tsk_timer(&tsk->thread.user_timer,
155 READ_ONCE(S390_lowcore.user_timer));
156 guest = update_tsk_timer(&tsk->thread.guest_timer,
157 READ_ONCE(S390_lowcore.guest_timer));
158 system = update_tsk_timer(&tsk->thread.system_timer,
159 READ_ONCE(S390_lowcore.system_timer));
160 hardirq = update_tsk_timer(&tsk->thread.hardirq_timer,
161 READ_ONCE(S390_lowcore.hardirq_timer));
162 softirq = update_tsk_timer(&tsk->thread.softirq_timer,
163 READ_ONCE(S390_lowcore.softirq_timer));
164 S390_lowcore.steal_timer +=
165 clock - user - guest - system - hardirq - softirq;
166
167 /* Push account value */
168 if (user) {
169 account_user_time(tsk, cputime_to_nsecs(user));
170 tsk->utimescaled += cputime_to_nsecs(scale_vtime(user));
171 }
172
173 if (guest) {
174 account_guest_time(tsk, cputime_to_nsecs(guest));
175 tsk->utimescaled += cputime_to_nsecs(scale_vtime(guest));
176 }
177
178 if (system)
179 account_system_index_scaled(tsk, system, CPUTIME_SYSTEM);
180 if (hardirq)
181 account_system_index_scaled(tsk, hardirq, CPUTIME_IRQ);
182 if (softirq)
183 account_system_index_scaled(tsk, softirq, CPUTIME_SOFTIRQ);
184
185 return virt_timer_forward(user + guest + system + hardirq + softirq);
186}
187
188void vtime_task_switch(struct task_struct *prev)
189{
190 do_account_vtime(prev);
191 prev->thread.user_timer = S390_lowcore.user_timer;
192 prev->thread.guest_timer = S390_lowcore.guest_timer;
193 prev->thread.system_timer = S390_lowcore.system_timer;
194 prev->thread.hardirq_timer = S390_lowcore.hardirq_timer;
195 prev->thread.softirq_timer = S390_lowcore.softirq_timer;
196 S390_lowcore.user_timer = current->thread.user_timer;
197 S390_lowcore.guest_timer = current->thread.guest_timer;
198 S390_lowcore.system_timer = current->thread.system_timer;
199 S390_lowcore.hardirq_timer = current->thread.hardirq_timer;
200 S390_lowcore.softirq_timer = current->thread.softirq_timer;
201}
202
203/*
204 * In s390, accounting pending user time also implies
205 * accounting system time in order to correctly compute
206 * the stolen time accounting.
207 */
208void vtime_flush(struct task_struct *tsk)
209{
210 u64 steal, avg_steal;
211
212 if (do_account_vtime(tsk))
213 virt_timer_expire();
214
215 steal = S390_lowcore.steal_timer;
216 avg_steal = S390_lowcore.avg_steal_timer / 2;
217 if ((s64) steal > 0) {
218 S390_lowcore.steal_timer = 0;
219 account_steal_time(steal);
220 avg_steal += steal;
221 }
222 S390_lowcore.avg_steal_timer = avg_steal;
223}
224
225/*
226 * Update process times based on virtual cpu times stored by entry.S
227 * to the lowcore fields user_timer, system_timer & steal_clock.
228 */
229void vtime_account_irq_enter(struct task_struct *tsk)
230{
231 u64 timer;
232
233 timer = S390_lowcore.last_update_timer;
234 S390_lowcore.last_update_timer = get_vtimer();
235 timer -= S390_lowcore.last_update_timer;
236
237 if ((tsk->flags & PF_VCPU) && (irq_count() == 0))
238 S390_lowcore.guest_timer += timer;
239 else if (hardirq_count())
240 S390_lowcore.hardirq_timer += timer;
241 else if (in_serving_softirq())
242 S390_lowcore.softirq_timer += timer;
243 else
244 S390_lowcore.system_timer += timer;
245
246 virt_timer_forward(timer);
247}
248EXPORT_SYMBOL_GPL(vtime_account_irq_enter);
249
250void vtime_account_system(struct task_struct *tsk)
251__attribute__((alias("vtime_account_irq_enter")));
252EXPORT_SYMBOL_GPL(vtime_account_system);
253
254/*
255 * Sorted add to a list. List is linear searched until first bigger
256 * element is found.
257 */
258static void list_add_sorted(struct vtimer_list *timer, struct list_head *head)
259{
260 struct vtimer_list *tmp;
261
262 list_for_each_entry(tmp, head, entry) {
263 if (tmp->expires > timer->expires) {
264 list_add_tail(&timer->entry, &tmp->entry);
265 return;
266 }
267 }
268 list_add_tail(&timer->entry, head);
269}
270
271/*
272 * Handler for expired virtual CPU timer.
273 */
274static void virt_timer_expire(void)
275{
276 struct vtimer_list *timer, *tmp;
277 unsigned long elapsed;
278 LIST_HEAD(cb_list);
279
280 /* walk timer list, fire all expired timers */
281 spin_lock(&virt_timer_lock);
282 elapsed = atomic64_read(&virt_timer_elapsed);
283 list_for_each_entry_safe(timer, tmp, &virt_timer_list, entry) {
284 if (timer->expires < elapsed)
285 /* move expired timer to the callback queue */
286 list_move_tail(&timer->entry, &cb_list);
287 else
288 timer->expires -= elapsed;
289 }
290 if (!list_empty(&virt_timer_list)) {
291 timer = list_first_entry(&virt_timer_list,
292 struct vtimer_list, entry);
293 atomic64_set(&virt_timer_current, timer->expires);
294 }
295 atomic64_sub(elapsed, &virt_timer_elapsed);
296 spin_unlock(&virt_timer_lock);
297
298 /* Do callbacks and recharge periodic timers */
299 list_for_each_entry_safe(timer, tmp, &cb_list, entry) {
300 list_del_init(&timer->entry);
301 timer->function(timer->data);
302 if (timer->interval) {
303 /* Recharge interval timer */
304 timer->expires = timer->interval +
305 atomic64_read(&virt_timer_elapsed);
306 spin_lock(&virt_timer_lock);
307 list_add_sorted(timer, &virt_timer_list);
308 spin_unlock(&virt_timer_lock);
309 }
310 }
311}
312
313void init_virt_timer(struct vtimer_list *timer)
314{
315 timer->function = NULL;
316 INIT_LIST_HEAD(&timer->entry);
317}
318EXPORT_SYMBOL(init_virt_timer);
319
320static inline int vtimer_pending(struct vtimer_list *timer)
321{
322 return !list_empty(&timer->entry);
323}
324
325static void internal_add_vtimer(struct vtimer_list *timer)
326{
327 if (list_empty(&virt_timer_list)) {
328 /* First timer, just program it. */
329 atomic64_set(&virt_timer_current, timer->expires);
330 atomic64_set(&virt_timer_elapsed, 0);
331 list_add(&timer->entry, &virt_timer_list);
332 } else {
333 /* Update timer against current base. */
334 timer->expires += atomic64_read(&virt_timer_elapsed);
335 if (likely((s64) timer->expires <
336 (s64) atomic64_read(&virt_timer_current)))
337 /* The new timer expires before the current timer. */
338 atomic64_set(&virt_timer_current, timer->expires);
339 /* Insert new timer into the list. */
340 list_add_sorted(timer, &virt_timer_list);
341 }
342}
343
344static void __add_vtimer(struct vtimer_list *timer, int periodic)
345{
346 unsigned long flags;
347
348 timer->interval = periodic ? timer->expires : 0;
349 spin_lock_irqsave(&virt_timer_lock, flags);
350 internal_add_vtimer(timer);
351 spin_unlock_irqrestore(&virt_timer_lock, flags);
352}
353
354/*
355 * add_virt_timer - add a oneshot virtual CPU timer
356 */
357void add_virt_timer(struct vtimer_list *timer)
358{
359 __add_vtimer(timer, 0);
360}
361EXPORT_SYMBOL(add_virt_timer);
362
363/*
364 * add_virt_timer_int - add an interval virtual CPU timer
365 */
366void add_virt_timer_periodic(struct vtimer_list *timer)
367{
368 __add_vtimer(timer, 1);
369}
370EXPORT_SYMBOL(add_virt_timer_periodic);
371
372static int __mod_vtimer(struct vtimer_list *timer, u64 expires, int periodic)
373{
374 unsigned long flags;
375 int rc;
376
377 BUG_ON(!timer->function);
378
379 if (timer->expires == expires && vtimer_pending(timer))
380 return 1;
381 spin_lock_irqsave(&virt_timer_lock, flags);
382 rc = vtimer_pending(timer);
383 if (rc)
384 list_del_init(&timer->entry);
385 timer->interval = periodic ? expires : 0;
386 timer->expires = expires;
387 internal_add_vtimer(timer);
388 spin_unlock_irqrestore(&virt_timer_lock, flags);
389 return rc;
390}
391
392/*
393 * returns whether it has modified a pending timer (1) or not (0)
394 */
395int mod_virt_timer(struct vtimer_list *timer, u64 expires)
396{
397 return __mod_vtimer(timer, expires, 0);
398}
399EXPORT_SYMBOL(mod_virt_timer);
400
401/*
402 * returns whether it has modified a pending timer (1) or not (0)
403 */
404int mod_virt_timer_periodic(struct vtimer_list *timer, u64 expires)
405{
406 return __mod_vtimer(timer, expires, 1);
407}
408EXPORT_SYMBOL(mod_virt_timer_periodic);
409
410/*
411 * Delete a virtual timer.
412 *
413 * returns whether the deleted timer was pending (1) or not (0)
414 */
415int del_virt_timer(struct vtimer_list *timer)
416{
417 unsigned long flags;
418
419 if (!vtimer_pending(timer))
420 return 0;
421 spin_lock_irqsave(&virt_timer_lock, flags);
422 list_del_init(&timer->entry);
423 spin_unlock_irqrestore(&virt_timer_lock, flags);
424 return 1;
425}
426EXPORT_SYMBOL(del_virt_timer);
427
428/*
429 * Start the virtual CPU timer on the current CPU.
430 */
431void vtime_init(void)
432{
433 /* set initial cpu timer */
434 set_vtimer(VTIMER_MAX_SLICE);
435 /* Setup initial MT scaling values */
436 if (smp_cpu_mtid) {
437 __this_cpu_write(mt_scaling_jiffies, jiffies);
438 __this_cpu_write(mt_scaling_mult, 1);
439 __this_cpu_write(mt_scaling_div, 1);
440 stcctm(MT_DIAG, smp_cpu_mtid + 1, this_cpu_ptr(mt_cycles));
441 }
442}
1/*
2 * Virtual cpu timer based timer functions.
3 *
4 * Copyright IBM Corp. 2004, 2012
5 * Author(s): Jan Glauber <jan.glauber@de.ibm.com>
6 */
7
8#include <linux/kernel_stat.h>
9#include <linux/export.h>
10#include <linux/kernel.h>
11#include <linux/timex.h>
12#include <linux/types.h>
13#include <linux/time.h>
14
15#include <asm/cputime.h>
16#include <asm/vtimer.h>
17#include <asm/vtime.h>
18#include <asm/cpu_mf.h>
19#include <asm/smp.h>
20
21#include "entry.h"
22
23static void virt_timer_expire(void);
24
25static LIST_HEAD(virt_timer_list);
26static DEFINE_SPINLOCK(virt_timer_lock);
27static atomic64_t virt_timer_current;
28static atomic64_t virt_timer_elapsed;
29
30DEFINE_PER_CPU(u64, mt_cycles[8]);
31static DEFINE_PER_CPU(u64, mt_scaling_mult) = { 1 };
32static DEFINE_PER_CPU(u64, mt_scaling_div) = { 1 };
33static DEFINE_PER_CPU(u64, mt_scaling_jiffies);
34
35static inline u64 get_vtimer(void)
36{
37 u64 timer;
38
39 asm volatile("stpt %0" : "=m" (timer));
40 return timer;
41}
42
43static inline void set_vtimer(u64 expires)
44{
45 u64 timer;
46
47 asm volatile(
48 " stpt %0\n" /* Store current cpu timer value */
49 " spt %1" /* Set new value imm. afterwards */
50 : "=m" (timer) : "m" (expires));
51 S390_lowcore.system_timer += S390_lowcore.last_update_timer - timer;
52 S390_lowcore.last_update_timer = expires;
53}
54
55static inline int virt_timer_forward(u64 elapsed)
56{
57 BUG_ON(!irqs_disabled());
58
59 if (list_empty(&virt_timer_list))
60 return 0;
61 elapsed = atomic64_add_return(elapsed, &virt_timer_elapsed);
62 return elapsed >= atomic64_read(&virt_timer_current);
63}
64
65static void update_mt_scaling(void)
66{
67 u64 cycles_new[8], *cycles_old;
68 u64 delta, fac, mult, div;
69 int i;
70
71 stcctm5(smp_cpu_mtid + 1, cycles_new);
72 cycles_old = this_cpu_ptr(mt_cycles);
73 fac = 1;
74 mult = div = 0;
75 for (i = 0; i <= smp_cpu_mtid; i++) {
76 delta = cycles_new[i] - cycles_old[i];
77 div += delta;
78 mult *= i + 1;
79 mult += delta * fac;
80 fac *= i + 1;
81 }
82 div *= fac;
83 if (div > 0) {
84 /* Update scaling factor */
85 __this_cpu_write(mt_scaling_mult, mult);
86 __this_cpu_write(mt_scaling_div, div);
87 memcpy(cycles_old, cycles_new,
88 sizeof(u64) * (smp_cpu_mtid + 1));
89 }
90 __this_cpu_write(mt_scaling_jiffies, jiffies_64);
91}
92
93/*
94 * Update process times based on virtual cpu times stored by entry.S
95 * to the lowcore fields user_timer, system_timer & steal_clock.
96 */
97static int do_account_vtime(struct task_struct *tsk)
98{
99 u64 timer, clock, user, system, steal;
100 u64 user_scaled, system_scaled;
101
102 timer = S390_lowcore.last_update_timer;
103 clock = S390_lowcore.last_update_clock;
104 asm volatile(
105 " stpt %0\n" /* Store current cpu timer value */
106#ifdef CONFIG_HAVE_MARCH_Z9_109_FEATURES
107 " stckf %1" /* Store current tod clock value */
108#else
109 " stck %1" /* Store current tod clock value */
110#endif
111 : "=m" (S390_lowcore.last_update_timer),
112 "=m" (S390_lowcore.last_update_clock));
113 S390_lowcore.system_timer += timer - S390_lowcore.last_update_timer;
114 S390_lowcore.steal_timer += S390_lowcore.last_update_clock - clock;
115
116 /* Update MT utilization calculation */
117 if (smp_cpu_mtid &&
118 time_after64(jiffies_64, this_cpu_read(mt_scaling_jiffies)))
119 update_mt_scaling();
120
121 user = S390_lowcore.user_timer - tsk->thread.user_timer;
122 S390_lowcore.steal_timer -= user;
123 tsk->thread.user_timer = S390_lowcore.user_timer;
124
125 system = S390_lowcore.system_timer - tsk->thread.system_timer;
126 S390_lowcore.steal_timer -= system;
127 tsk->thread.system_timer = S390_lowcore.system_timer;
128
129 user_scaled = user;
130 system_scaled = system;
131 /* Do MT utilization scaling */
132 if (smp_cpu_mtid) {
133 u64 mult = __this_cpu_read(mt_scaling_mult);
134 u64 div = __this_cpu_read(mt_scaling_div);
135
136 user_scaled = (user_scaled * mult) / div;
137 system_scaled = (system_scaled * mult) / div;
138 }
139 account_user_time(tsk, user);
140 tsk->utimescaled += user_scaled;
141 account_system_time(tsk, 0, system);
142 tsk->stimescaled += system_scaled;
143
144 steal = S390_lowcore.steal_timer;
145 if ((s64) steal > 0) {
146 S390_lowcore.steal_timer = 0;
147 account_steal_time(steal);
148 }
149
150 return virt_timer_forward(user + system);
151}
152
153void vtime_task_switch(struct task_struct *prev)
154{
155 do_account_vtime(prev);
156 prev->thread.user_timer = S390_lowcore.user_timer;
157 prev->thread.system_timer = S390_lowcore.system_timer;
158 S390_lowcore.user_timer = current->thread.user_timer;
159 S390_lowcore.system_timer = current->thread.system_timer;
160}
161
162/*
163 * In s390, accounting pending user time also implies
164 * accounting system time in order to correctly compute
165 * the stolen time accounting.
166 */
167void vtime_account_user(struct task_struct *tsk)
168{
169 if (do_account_vtime(tsk))
170 virt_timer_expire();
171}
172
173/*
174 * Update process times based on virtual cpu times stored by entry.S
175 * to the lowcore fields user_timer, system_timer & steal_clock.
176 */
177void vtime_account_irq_enter(struct task_struct *tsk)
178{
179 u64 timer, system, system_scaled;
180
181 timer = S390_lowcore.last_update_timer;
182 S390_lowcore.last_update_timer = get_vtimer();
183 S390_lowcore.system_timer += timer - S390_lowcore.last_update_timer;
184
185 /* Update MT utilization calculation */
186 if (smp_cpu_mtid &&
187 time_after64(jiffies_64, this_cpu_read(mt_scaling_jiffies)))
188 update_mt_scaling();
189
190 system = S390_lowcore.system_timer - tsk->thread.system_timer;
191 S390_lowcore.steal_timer -= system;
192 tsk->thread.system_timer = S390_lowcore.system_timer;
193 system_scaled = system;
194 /* Do MT utilization scaling */
195 if (smp_cpu_mtid) {
196 u64 mult = __this_cpu_read(mt_scaling_mult);
197 u64 div = __this_cpu_read(mt_scaling_div);
198
199 system_scaled = (system_scaled * mult) / div;
200 }
201 account_system_time(tsk, 0, system);
202 tsk->stimescaled += system_scaled;
203
204 virt_timer_forward(system);
205}
206EXPORT_SYMBOL_GPL(vtime_account_irq_enter);
207
208void vtime_account_system(struct task_struct *tsk)
209__attribute__((alias("vtime_account_irq_enter")));
210EXPORT_SYMBOL_GPL(vtime_account_system);
211
212/*
213 * Sorted add to a list. List is linear searched until first bigger
214 * element is found.
215 */
216static void list_add_sorted(struct vtimer_list *timer, struct list_head *head)
217{
218 struct vtimer_list *tmp;
219
220 list_for_each_entry(tmp, head, entry) {
221 if (tmp->expires > timer->expires) {
222 list_add_tail(&timer->entry, &tmp->entry);
223 return;
224 }
225 }
226 list_add_tail(&timer->entry, head);
227}
228
229/*
230 * Handler for expired virtual CPU timer.
231 */
232static void virt_timer_expire(void)
233{
234 struct vtimer_list *timer, *tmp;
235 unsigned long elapsed;
236 LIST_HEAD(cb_list);
237
238 /* walk timer list, fire all expired timers */
239 spin_lock(&virt_timer_lock);
240 elapsed = atomic64_read(&virt_timer_elapsed);
241 list_for_each_entry_safe(timer, tmp, &virt_timer_list, entry) {
242 if (timer->expires < elapsed)
243 /* move expired timer to the callback queue */
244 list_move_tail(&timer->entry, &cb_list);
245 else
246 timer->expires -= elapsed;
247 }
248 if (!list_empty(&virt_timer_list)) {
249 timer = list_first_entry(&virt_timer_list,
250 struct vtimer_list, entry);
251 atomic64_set(&virt_timer_current, timer->expires);
252 }
253 atomic64_sub(elapsed, &virt_timer_elapsed);
254 spin_unlock(&virt_timer_lock);
255
256 /* Do callbacks and recharge periodic timers */
257 list_for_each_entry_safe(timer, tmp, &cb_list, entry) {
258 list_del_init(&timer->entry);
259 timer->function(timer->data);
260 if (timer->interval) {
261 /* Recharge interval timer */
262 timer->expires = timer->interval +
263 atomic64_read(&virt_timer_elapsed);
264 spin_lock(&virt_timer_lock);
265 list_add_sorted(timer, &virt_timer_list);
266 spin_unlock(&virt_timer_lock);
267 }
268 }
269}
270
271void init_virt_timer(struct vtimer_list *timer)
272{
273 timer->function = NULL;
274 INIT_LIST_HEAD(&timer->entry);
275}
276EXPORT_SYMBOL(init_virt_timer);
277
278static inline int vtimer_pending(struct vtimer_list *timer)
279{
280 return !list_empty(&timer->entry);
281}
282
283static void internal_add_vtimer(struct vtimer_list *timer)
284{
285 if (list_empty(&virt_timer_list)) {
286 /* First timer, just program it. */
287 atomic64_set(&virt_timer_current, timer->expires);
288 atomic64_set(&virt_timer_elapsed, 0);
289 list_add(&timer->entry, &virt_timer_list);
290 } else {
291 /* Update timer against current base. */
292 timer->expires += atomic64_read(&virt_timer_elapsed);
293 if (likely((s64) timer->expires <
294 (s64) atomic64_read(&virt_timer_current)))
295 /* The new timer expires before the current timer. */
296 atomic64_set(&virt_timer_current, timer->expires);
297 /* Insert new timer into the list. */
298 list_add_sorted(timer, &virt_timer_list);
299 }
300}
301
302static void __add_vtimer(struct vtimer_list *timer, int periodic)
303{
304 unsigned long flags;
305
306 timer->interval = periodic ? timer->expires : 0;
307 spin_lock_irqsave(&virt_timer_lock, flags);
308 internal_add_vtimer(timer);
309 spin_unlock_irqrestore(&virt_timer_lock, flags);
310}
311
312/*
313 * add_virt_timer - add an oneshot virtual CPU timer
314 */
315void add_virt_timer(struct vtimer_list *timer)
316{
317 __add_vtimer(timer, 0);
318}
319EXPORT_SYMBOL(add_virt_timer);
320
321/*
322 * add_virt_timer_int - add an interval virtual CPU timer
323 */
324void add_virt_timer_periodic(struct vtimer_list *timer)
325{
326 __add_vtimer(timer, 1);
327}
328EXPORT_SYMBOL(add_virt_timer_periodic);
329
330static int __mod_vtimer(struct vtimer_list *timer, u64 expires, int periodic)
331{
332 unsigned long flags;
333 int rc;
334
335 BUG_ON(!timer->function);
336
337 if (timer->expires == expires && vtimer_pending(timer))
338 return 1;
339 spin_lock_irqsave(&virt_timer_lock, flags);
340 rc = vtimer_pending(timer);
341 if (rc)
342 list_del_init(&timer->entry);
343 timer->interval = periodic ? expires : 0;
344 timer->expires = expires;
345 internal_add_vtimer(timer);
346 spin_unlock_irqrestore(&virt_timer_lock, flags);
347 return rc;
348}
349
350/*
351 * returns whether it has modified a pending timer (1) or not (0)
352 */
353int mod_virt_timer(struct vtimer_list *timer, u64 expires)
354{
355 return __mod_vtimer(timer, expires, 0);
356}
357EXPORT_SYMBOL(mod_virt_timer);
358
359/*
360 * returns whether it has modified a pending timer (1) or not (0)
361 */
362int mod_virt_timer_periodic(struct vtimer_list *timer, u64 expires)
363{
364 return __mod_vtimer(timer, expires, 1);
365}
366EXPORT_SYMBOL(mod_virt_timer_periodic);
367
368/*
369 * Delete a virtual timer.
370 *
371 * returns whether the deleted timer was pending (1) or not (0)
372 */
373int del_virt_timer(struct vtimer_list *timer)
374{
375 unsigned long flags;
376
377 if (!vtimer_pending(timer))
378 return 0;
379 spin_lock_irqsave(&virt_timer_lock, flags);
380 list_del_init(&timer->entry);
381 spin_unlock_irqrestore(&virt_timer_lock, flags);
382 return 1;
383}
384EXPORT_SYMBOL(del_virt_timer);
385
386/*
387 * Start the virtual CPU timer on the current CPU.
388 */
389void vtime_init(void)
390{
391 /* set initial cpu timer */
392 set_vtimer(VTIMER_MAX_SLICE);
393 /* Setup initial MT scaling values */
394 if (smp_cpu_mtid) {
395 __this_cpu_write(mt_scaling_jiffies, jiffies);
396 __this_cpu_write(mt_scaling_mult, 1);
397 __this_cpu_write(mt_scaling_div, 1);
398 stcctm5(smp_cpu_mtid + 1, this_cpu_ptr(mt_cycles));
399 }
400}